The present invention relates to loudspeakers. In particular, the present invention relates to loudspeakers equipped with a waveguide.
To be exact, the present invention relates to the preamble portion of claim 1.
In the prior art especially loudspeakers with two or more drivers (multiway loudspeakers) have exhibited problems with sound diffractions created by discontinuities on the front baffle surface (Face) of the loudspeaker. In practice the high frequency driver (tweeter) has been the most critical part in this sense. The applicant of the present application has created solutions where the surroundings of the tweeter have been formed as a continuous waveguide for high and midrange frequency audio signals either merely for a tweeter and/or midrange driver or alternatively for a coaxial midrange-tweeter driver.
In this application, these kinds of sound sources are referred to as waveguide drivers and they include any drivers located in the centre of this three dimensional waveguide structure. By these solutions good sound quality and accurate directing of the sound energy may be achieved. However, the frequency range and effectiveness of the waveguide for controlling the directivity of radiation depends on the size of the waveguide, determined to a great extent by the surface area covered by the waveguide, and therefore the size of the front baffle (Face) of the loudspeaker. Small waveguide area limits directivity control to high frequencies, such as the tweeter range only. A large waveguide area enables extending the frequency range of directivity control towards lower frequencies, such as the midrange driver frequency range.
When a smaller size loudspeaker is designed, all the drivers usually cannot be placed in the center of the waveguide (such as the low frequency radiator, the woofer) the surface area taken by these other drivers and the drivers themselves will either limit the baffle area available for the waveguide or additionally create harmful diffractions of audio energy, causing deterioration of the quality of the audio signal audible to the listener.
In the prior art there have been attempts to create a loudspeaker with one or more waveguides on the front side of the loudspeaker. The applicant of the present application has earlier created various solutions like this, e.g. in EP-application 14168925.7 and application PCT/FI2014/050757. In these applications were presented solutions where non-coaxial drivers were positioned such that they are not disturbing the waveguide form created on the front surface (Face) of the enclosure and if positioned on the same surface (the front side (Face) of the enclosure) they are covered with a material that functions advantageously as a solid surface in selected frequencies and restricts penetration of the frequencies emitted by the sound source(s) for which the waveguide has been designed and on the other hand being permeable to other frequencies, more specifically the frequencies radiated by the non-coaxial driver(s), typically woofer(s), emit.
Covering the low frequency driver may cause some problems with the dynamic performance of the driver because the volume displacement of air by the driver requires sufficient openings to allow flow of air. In addition the sub volume in front of the woofer may cause unwanted resonances.
In accordance with the invention at least some of the problems described above are solved by acoustically connecting either resistive or reactive resonators, which are separate elements of the cast enclosure, to the sub volume of the woofer such that the total volume of the loudspeaker stays as small as possible. Advantageously these resonators are located at least partially around the coaxial element. In addition, the aim of the invention is to improve the dynamical performance of the woofer(s).
More specifically, loudspeaker according to the invention is characterized by what is stated in characterizing portion of claim 1.
According to one embodiment of the invention, the loudspeaker includes at least one resonator acoustically connected to the sub volume, the resonator being tuned to at least one of unwanted resonances of the sub volume.
Considerable advantages are gained with the aid of the present invention.
With help of one embodiment of the invention the low frequency driver may be covered and yet problems with the resonances caused by the sub volume of the woofer may be suppressed. In some embodiments the suppression may take place in multiple frequencies by multiple resonators tuned to different frequencies.
With help of the invention the entire front surface (Face) of the loudspeaker can be formed as a continuous waveguide for mid- and high frequencies without any disturbing resonances on form the sub volume of the bass driver, yet keeping the total volume of the loudspeaker as small as possible. By this measure the whole audio range from 18-20000 Hz may be directed precisely to one “sweet spot” and in addition the rest of the sound energy is divided to the listening room due to the full waveguide form of the loudspeaker such that the loudspeaker enclosure itself does not essentially affect to the frequency response in other directions than the main direction.
In other words, in the traditional loudspeakers where the complete baffle plate is either planar or only partly curved as a waveguide, the signal formed into other directions than the “sweet spot” will be reflected from the walls of the listening room in a non controlled manner. The invention however provides an enclosure where the sound pressure is optimally distributed to all directions, whereby also the wall reflections sound natural to human ear.
Because the resonator is a separate part, it can be processed from different material with different manufacturing procedure than the cast enclosure. This facilitates manufacturing more detailed components like curved or spiral-shaped resonance cavities. In addition this makes it possible to produce different kind of resonators for alternative drivers for the same cast loudspeaker enclosure. The material for the resonator may also be selected freely from plastics to wood based materials and even metal can be used.
In the following, certain preferred embodiments of the invention are described with reference to the accompanying drawings, in which:
In accordance with
The waveguide surface 8 radiates the main acoustic power of the driver 3. The waveguide 8 has a smooth continuous surface with axially symmetrical features around the centre of the waveguide driver 3. Two woofer drivers 4 are positioned symmetrically on both sides of the waveguide driver 3 inside the enclosure 2 and narrow ports (openings) 20, first ports are formed just behind the waveguide surface for the woofers 4 in order to let the acoustic energy out from the enclosure 2. These first ports 20 are in this embodiment in the narrow front ends of the enclosure 2 and these ports are partially visible from the listening direction. In other words the first port 20 is a U-form slot.
With dashed line are presented the woofers 4 and outlines of the woofer sub volumes 22 and resonators 40 connected to the woofer sub volume 22. The function of the resonators 40 is to suppress resonations of the woofer sub volume 22. These resonators 40 are positioned partially behind the coaxial driver 3 and each sub volume 22 has two resonators on both sides of the coaxial driver 3. The sub volume 22 has width W and height H such that the ratio W/H is around 1.8 and typically in the range of 1.0-5. The resonators 40 are typically an integral part of the enclosure.
The resonators are dimensioned such that the longest dimension, in this time length is λ/4 or alternatively λ/2 of the wavelength to be suppressed. In other words if the sub volume 22 has an unwanted resonance at wavelength λ, the resonator should be λ/4 long. In frequency domain this means that at resonance f0, λ=v/f0, where v is the velocity of sound.
Advantageously the resonator 40 is filled with a suppressive material 41 like PES wool, open-cell foam material, fibre glass, mineral wool, felt, or other fiberous or open cell or porous materials, or alternatively of any solid material that is manufactured in the place of the volume such that the material an open cell or fiberous structure where the cell size or the fiber size as in the dimensional area of 1 um (micrometer) to 1 mm (millimeter).
With reference to
Referring to
In other words the loudspeaker 1 includes a first driver 3, which is configured to produce a first frequency band B1 and a corresponding first acoustic axis 10, and a second driver 4, which is configured to produce a second frequency band B2, which is different from the first frequency band B1 but may overlap in a cross-over region, and which second frequency band B2 has a second acoustic axis 11. The enclosure 2 encloses said drivers 3, 4 and comprises a three dimensional waveguide 8 positioned on a front surface of the enclosure 2 and around the first driver 3.
As described above the second acoustic axis 11 of individual woofer drivers are non-coaxial with the first acoustic axis 10, however the resultant axis of the multiple symmetrical woofers working together (equivalent woofer driver) has the same acoustic axis as the coaxial driver, waveguide driver 3. This symmetry is however not required in all embodiments of the invention. The axes 10 and 11 may be parallel or non-parallel.
Referring to
The side walls 33 of the sub volume (front space) 22 form a spacer between the driver 4 and the enclosure 2 sealing the sub volume 22 from the rest of the inner volume 27 of the enclosure 2. In more detail the inner volume 27 is limited by the enclosure 2 walls, namely front portion 15, side portions 21 and back portion 25.
Typically the first ports 20 are directed substantially orthogonally in relation to first 10 and second 11 axes, most preferably in the range of 60-120 degrees in relation to these axes. However when the first ports 20 are conducted to the back portion 25 of the enclosure 2, e.g. by channels, the difference between the direction of the first ports 20 and the axes 10 and 11 may be even 180 degrees.
The total area of the first ports 20 is the critical feature, therefore the first ports 20 may be only one single first port 20 for each woofer 4 as presented in the figures or may be formed of multiple first ports 20 like a grid with an area corresponding one single port.
The first ports 20 should not disturb the three dimensional waveguide surface 8, and therefore they are advantageously positioned on the side portions 21 of the enclosure 2. Of course these first ports 20 may be conducted to the back portion 25 of the enclosure 2 by suitable tubes or channels (not shown). In other words the first ports 20 form air passages to areas outside the three dimensional waveguide 8 of the front portion 15 of the enclosure 2.
The graph of
The resonance arises from the effect of the acoustic air mass neck of the resonator 40 and the series resonance circuit created by the acoustic compliance of the air volume of the chamber of the resonator. Close to the resonance frequency, the Helmholtz resonator attenuates the unwanted resonance of sub volume 22. The neck-cavity system of the resonator 40, can be derived from the air volume of the cavity of the resonator and the diameter of the neck and its length.
in which f0 is the resonance frequency, c is the speed of sound, A is the cross-sectional area of the neck, L is the length of the neck, and V is the volume of the chamber.
Panel resonator/membrane absorber resonant frequency f is defined in the following way:
f=60√{square root over (md)}
where m
m=acoustic mass per unit area of panel 50 (kg/m2)
d=cavity depth
Stiffness of the membrane fixing is assumed to be negligible
Typically the loudspeaker in accordance with the invention functions in accordance with well-known bass reflex principle, where the low frequency driver 4 is tuned in resonance with help of the compliance of the air volume contained inside the enclosure 27 and the air volume contained inside the reflex port 34 of
One embodiment of the prior art which can be used at least partially with the invention (
The loudspeaker 1 comprises an enclosure 2 defining an inner volume 27 and including a frontal baffle portion 15 (front portion), which has a front port 5 for providing a fluid passageway between the inner volume 27 and the ambient volume 26 of the enclosure 2 and a side portion 21 extending rearward from the periphery of the baffle portion 15. The side portion 21 forms side walls or the enclosure 2. The enclosure further includes a back portion 25, which is typically essentially parallel with the frontal baffle portion 15 and forming the back side of the enclosure 2. The loudspeaker 1 further comprises a driver 4 attached to the enclosure 2, such that the driver 4 is arranged at a distance from the baffle portion 15, forming a sub volume 22 inside the enclosure 2 such that a sub volume 22 is formed between the driver 4 and the baffle portion 15 by a spacer 33, wherein said front port 5 acts as a front port between the sub volume 22 and the ambient volume 28 of the enclosure 2. In accordance with this embodiment a first port 20 is formed to the enclosure 2 either in the side portion 21 or back portion 25 in order to connect the sub volume 22 and the ambient volume 26 with each other.
In accordance with
With reference to
Referring to
In other words the loudspeaker 1 includes a first driver 3, which is configured to produce a first frequency band B1 and a corresponding first acoustic axis 10, and a second driver 4, which is configured to produce a second frequency band B2, which is different from the first frequency band B1 but may overlap in a cross-over region, and which second frequency band B2 has a second acoustic axis 11. The enclosure 2 encloses said drivers 3, 4 and comprises a three dimensional waveguide 8 positioned on a front surface of the enclosure 2 and around the first driver 3. The three dimensional waveguide 8 comprises an acoustically selectively transparent portion 6 which is acoustically essentially reflecting to sound waves of the first frequency band B1 propagating in a direction angled to the first acoustic axis 10, the waveguide portion 6 is essentially transparent to sound waves of the second frequency band B2 propagating in the direction of the second acoustic axis through the waveguide portion 6, and the second driver 4 is positioned inside the enclosure 2 behind the acoustically selectively transparent portion 6.
As described above the second acoustic axis 11 of individual woofer drivers are non-coaxial with the first acoustic axis 10, however the resultant axis of the multiple woofers working together (equivalent woofer driver) has the same acoustic axis as the coaxial driver, waveguide driver 3. This symmetry is however not required in all embodiments of the invention. The axes 10 and 11 may be parallel or non-parallel.
Referring to
In some embodiments of the invention the acoustically selectively transparent layer 6 may be replaced by a mechanically protective grid, the grid limiting in this case the sub volume, as well as the inner volume 27. Advantageously the first ports 20 are formed in the side walls 23 of the sub volume 22 and to the side portions 21 of the enclosure 2 in order to optimize the operation of the woofer 4. Without these first ports 20 the performance of the woofer 4 may be compromised. The first ports 20 may be positioned on any of the side portions 21, e.g. on the short side portions 21 as shown in the figures or alternatively to the long side portions 21.
Typically the first ports 20 are directed substantially orthogonally in relation to first 10 and second 11 axes, most preferably in the range of 60-120 degrees in relation to these axes. However when the first ports 20 are conducted to the back portion 25 of the enclosure 2, e.g. by channels, the difference between the direction of the first ports 20 and the axes 10 and 11 may be even 180 degrees.
The area of these first ports 20 is typically 5-50% of the area of the openings 5 for the woofer 4, most advantageously in the range of 10-20% of the area of the openings 5 for the woofer 4. The total area of the first ports 20 is the critical feature, therefore the first ports 20 may be only one single first port 20 for each woofer 4 as presented in the figures or may be formed of multiple first ports 20 like a grid with an area corresponding one single port.
The first ports 20 should not disturb the three dimensional waveguide surface 8, and therefore they are advantageously positioned on the side portions 21 of the enclosure 2. Of course these first ports 20 may be conducted to the back portion 25 of the enclosure 2 by suitable tubes or channels (not shown). In other words the first ports 20 form air passages to areas outside the three dimensional waveguide 8 of the front portion 15 of the enclosure 2.
Typically the second driver 4 is positioned inside the enclosure 2 behind the acoustically selectively transparent portion 6 and spaced from it, such that a sub volume 22 is formed inside the enclosure 2 and separated from the inner volume 27 by the driver 4 and side walls 23 formed as a spacer between the driver 4 and the front portion 15 of the enclosure 2.
In connection with the acoustically selectively transparent layer 6 essentially reflecting means reflection or absorption of at least 50-100% of the acoustic energy, preferably in the range of 80-100%.
In the same way essentially transparent means transparency of at least 50-100% of the acoustic energy preferably in the range of 80-100%.
In the following additional advantageous properties of the acoustically selectively transparent layer 6 are presented:
The thickness of the layer 6 is advantageously:
The layer 6 should attenuate the acoustical radiation of the waveguide driver 3, meaning typically in frequencies above 600 Hz.
In other words the layer 6 should have an acoustical impedance (or absorption) as a function of frequency therefore functioning as an acoustical filter in the following way:
Advantageously the layer 6 is formed of holes or pores or their combination in the following way:
The properties for the ideal material for layer 6 are the following:
The layer 6 may cover the loudspeaker front (tweeter 12 excluded) or only the holes 5.
The layer 6 may be also formed as a metal structure, like mesh or grid with on one or several layers in accordance with the above requirements for porosity and frequency properties. This kind of structure could be formed e.g. by a stack of perforated metal sheets or plates of thickness around 0.2-2 mm. The properties of this kind of stack could be adjusted by placement (distribution) of the holes or pores, percentage (openness) of the holes or pores, and the spacing of the plates from each other. The hole or aperture diameter may vary typically around 0.3-3 mm. The spacing between the sheets or plates is typically around 0.2-2 mm.
A metal structure described above is advantageous, because its propertied can be adjusted freely and the external properties like colour can be as well selected without limitations.
The crossover frequency C is typically the following:
In accordance with the invention in combination with the large waveguide 8:
Also an embodiment with only one woofer is possible, however directivity for low frequencies will not be obtained beyond what is provided by the size of the air displacing surface of the woofer in combination with the size of the front baffle of the loudspeaker enclosure.
In alternative embodiments of the invention the selectively transparent portion 6 may be replaced by a mechanically protective grid not having complete properties of selective transparency.
In accordance with
In
In accordance with
The dimensioning of the resonator cavities 46 is made in connection with
Typically the uniform loudspeaker enclosure 2 is made by casting or moulding of metal, plastic or wood based material.
Number | Date | Country | Kind |
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20195727 | Sep 2019 | FI | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FI2020/050543 | 8/20/2020 | WO |